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核磁共振法测定Pol λ裂解酶结构域中赖氨酸的pKa值:机理启示

NMR determination of lysine pKa values in the Pol lambda lyase domain: mechanistic implications.

作者信息

Gao Guanghua, DeRose Eugene F, Kirby Thomas W, London Robert E

机构信息

Laboratory of Structural Biology, National Institute of Environmental Health Sciences, NIH, Research Triangle Park, North Carolina 27709, USA.

出版信息

Biochemistry. 2006 Feb 14;45(6):1785-94. doi: 10.1021/bi051856p.

Abstract

The base excision repair (BER) process requires removal of an abasic deoxyribose-5-phosphate group, a catalytic activity that has been demonstrated for the N-terminal 8 kDa domain of DNA polymerase beta (Pol beta), and for the homologous domain of DNA polymerase lambda (Pol lambda). Previous studies have demonstrated that this activity results from formation of a Schiff base adduct of the abasic deoxyribose C-1' with a lysine residue (K312 in the case of Pol lambda), followed by a beta-elimination reaction. To better understand the underlying chemistry, we have determined pKa values for the lysine residues in the Pol lambda lyase domain labeled with [epsilon-13C]lysine. At neutral pH, the H(epsilon) protons on 3 of the 10 lysine residues in this domain, K287, K291, and K312, exhibit chemical shift inequivalence that results from immobilization of the lysyl side chains. For K287 and K291, this results from the K287-E261 and K291-E298 salt bridge interactions, while for K312, immobilization apparently results from steric and hydrogen-bonding interactions that constrain the position of the lysine side chain. The pKa value of K312 is depressed to 9.58, a value indicating that at physiological pH K312 will exist predominantly in the protonated form. Titration of the domain with hairpin DNA containing a 5'-tetrahydrofuran terminus to model the abasic site produced shifts of the labeled lysine resonances that were in fast exchange but appeared to be complete at a stoichiometry of approximately 1:1.3, consistent with a dissociation constant of approximately 1 microM. The epsilon-proton shifts of K273 were the most sensitive to the addition of the DNA, apparently due to changes in the relative orientation between K273 and W274 in the DNA complex. The average pKa values increased by 0.55, consistent with the formation of some DNA-lysine salt bridges and with the general pH increase expected to result from a reduction in the net positive charge of the complex. A general increase in the Hill coefficients observed in the complex is consistent with the screening of the interacting lysine residues by the DNA. The pKa of K312 residue increased to 10.58 in the complex, probably due to salt bridge formation with the 5'-phosphate group of the DNA. The pKa values obtained for the lyase domain of Pol lambda in the present study are consistent with recent crystallographic studies of Pol beta complexed with 5-phosphorylated abasic sugar analogues in nicked DNA which reveal an open site with no obvious interactions that would significantly depress the pK value for the active site lysine residue. It is suggested that due to the heterogeneity of the damaged DNA substrates with which Pol lambda as well as other related polymerases may be required to bind, the unexpectedly poor optimization of the lyase catalytic site may reflect a compromise of flexibility with catalytic efficiency.

摘要

碱基切除修复(BER)过程需要去除无碱基脱氧核糖-5-磷酸基团,这种催化活性已在DNA聚合酶β(Polβ)的N端8 kDa结构域以及DNA聚合酶λ(Polλ)的同源结构域中得到证实。先前的研究表明,这种活性源于无碱基脱氧核糖C-1'与赖氨酸残基(对于Polλ而言为K312)形成席夫碱加合物,随后发生β-消除反应。为了更好地理解其潜在化学机制,我们测定了用[ε-13C]赖氨酸标记的Polλ裂解酶结构域中赖氨酸残基的pKa值。在中性pH条件下,该结构域中10个赖氨酸残基中的3个,即K287、K291和K312的H(ε)质子表现出化学位移不等价性,这是由于赖氨酰侧链的固定化所致。对于K287和K291,这是由K287-E261和K291-E298盐桥相互作用导致的,而对于K312,固定化显然是由限制赖氨酸侧链位置的空间和氢键相互作用引起的。K312的pKa值降低至9.58,这表明在生理pH条件下K312将主要以质子化形式存在。用含有5'-四氢呋喃末端的发夹DNA滴定该结构域以模拟无碱基位点,产生了标记赖氨酸共振的位移,这些位移处于快速交换状态,但在化学计量比约为1:1.3时似乎完全完成,这与约1 microM的解离常数一致。K273的ε-质子位移对DNA的添加最为敏感,这显然是由于DNA复合物中K273和W274之间相对取向的变化所致。平均pKa值增加了0.55,这与一些DNA-赖氨酸盐桥的形成以及由于复合物净正电荷减少预期导致的总体pH升高一致。在复合物中观察到的希尔系数普遍增加与DNA对相互作用的赖氨酸残基的屏蔽作用一致。复合物中K312残基的pKa值增加到10.58,可能是由于与DNA的5'-磷酸基团形成了盐桥。本研究中获得的Polλ裂解酶结构域的pKa值与最近对与带切口DNA中的5-磷酸化无碱基糖类似物复合的Polβ的晶体学研究一致,该研究揭示了一个开放位点,没有明显的相互作用会显著降低活性位点赖氨酸残基的pK值。有人认为,由于Polλ以及其他相关聚合酶可能需要结合的受损DNA底物的异质性,裂解酶催化位点意外不佳的优化可能反映了灵活性与催化效率之间的权衡。

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